论文标题

基于SRRRUO3的异质结构中的室温自旋轨道扭矩效率和磁化切换

Room temperature spin-orbit torque efficiency and magnetization switching in SrRuO3-based heterostructures

论文作者

Li, Sheng, Lao, Bin, Lu, Zengxing, Zheng, Xuan, Zhao, Kenan, Gong, Liguang, Tang, Tao, Wu, Keyi, Li, Run-Wei, Wang, Zhiming

论文摘要

从过渡金属氧化物(TMO)与磁性材料结合使用的自旋轨道扭矩(SOT)最近引起了极大的关注,以实现高效的自旋装置。 SRRUO3由于其较大且可调的SOT效率以及高电导率和化学稳定性,因此在TMO中是有前途的候选人。然而,迄今为止,一项进一步的研究基于SOT效率和实现SOT驱动的磁化切换的研究仍然是高度期望的。在这里,我们系统地研究了通过谐波霍尔电压技术,具有IMA和PMA构型的不同磁合金的高质量SRRUO3薄膜异质结构的SOT特性。我们的结果表明,在室温下,SRRUO3在室温下的明显SOT效率约为0.2,无论磁合金如何,这与典型的重金属(HMS)相当。此外,我们以低阈值电流密度为3.8x10^10 a/m^2实现了SOT驱动的磁化磁化切换,这证明了SRRUO3对实用设备的有希望的潜力。通过与HMS进行全面的比较,我们的工作明确地基准了SOT特性并得出结论SRRUO3的优势,SRRUO3的优势可能通过利用杂交氧化物/金属和全氧化物系统来为SOT应用带来更多样化的选择。

Spin-orbit torques (SOTs) from transition metal oxides (TMOs) in conjunction with magnetic materials have recently attracted tremendous attention for realizing high-efficient spintronic devices. SrRuO3 is a promising candidate among TMOs due to its large and tunable SOT-efficiency as well as high conductivity and chemical stability. However, a further study for benchmarking the SOT-efficiency and realizing SOT-driven magnetization switching in SrRuO3 is still highly desired so far. Here, we systematically study the SOT properties of high-quality SrRuO3 thin film heterostructuring with different magnetic alloys of both IMA and PMA configuration by the harmonic Hall voltage technique. Our results indicate that SrRuO3 possesses pronounced SOT-efficiency of about 0.2 at room temperature regardless of the magnetic alloys, which is comparable to typical heavy metals (HMs). Furthermore, we achieve SOT-driven magnetization switching with a low threshold current density of 3.8x10^10 A/m^2, demonstrating the promising potential of SrRuO3 for practical devices. By making a comprehensive comparison with HMs, our work unambiguously benchmarks the SOT properties and concludes the advantages of SrRuO3, which may bring more diverse choices for SOT applications by utilizing hybrid-oxide/metal and all-oxide systems.

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